Research paperExperimental CharacterizationTheoreticalComputed PhononLocal control and lateral nanofocusing of hyperbolic phonon polaritonsJacob T. Heiden, Haozhe Tong, Yongjun Lim, Heerin Noh et al.arXiv·2026·arXiv:2604.08996AbstractPhonon polaritons in van der Waals crystals enable exceptional light confinement and control over low-loss nanolight propagation. The polariton wavelength can be controlled by the crystal geometry, isotopic composition, or surrounding environment – for which substrate engineering is particularly effective. However, existing approaches of substrate nanopatterning are binary and offer limited leverage. Here, we demonstrate local control over the wavelength of phonon polaritons in hexagonal boron nitride by employing a sinusoidally corrugated gold surface to smoothly vary the gap between the van der Waals crystal and metallic substrate. The nonuniform gap provides a continuous and nearly threefold local variation of the polariton wavelength across the structure, verified by near-field optical microscopy. Our platform further enables lateral nanofocusing by gradually compressing and decompressing the wavelength of propagating polaritons by a factor of around 2.5 achieved solely through substrate geometry, consistent with our local control experiments and theoretical calculations.Read more
hBN flake placed on a sinusoidally corrugated azopolymer film conformally coated with Au, producing a spatially varying hBN-to-Au gap from 0 to 75 nm.3 characterizations5 properties1 figureExperimentalhBNStudied MaterialAuCapping Or ContactazopolymerSubstrate / DielectricExpand
Research paperExperimental CharacterizationTheoreticalComputed PhononLocal control and lateral nanofocusing of hyperbolic phonon polaritonsJacob T. Heiden, Haozhe Tong, Yongjun Lim, Heerin Noh et al.arXiv·2026·arXiv:2604.08996AbstractPhonon polaritons in van der Waals crystals enable exceptional light confinement and control over low-loss nanolight propagation. The polariton wavelength can be controlled by the crystal geometry, isotopic composition, or surrounding environment – for which substrate engineering is particularly effective. However, existing approaches of substrate nanopatterning are binary and offer limited leverage. Here, we demonstrate local control over the wavelength of phonon polaritons in hexagonal boron nitride by employing a sinusoidally corrugated gold surface to smoothly vary the gap between the van der Waals crystal and metallic substrate. The nonuniform gap provides a continuous and nearly threefold local variation of the polariton wavelength across the structure, verified by near-field optical microscopy. Our platform further enables lateral nanofocusing by gradually compressing and decompressing the wavelength of propagating polaritons by a factor of around 2.5 achieved solely through substrate geometry, consistent with our local control experiments and theoretical calculations.Read more
hBN flake placed on a sinusoidally corrugated azopolymer film conformally coated with Au, producing a spatially varying hBN-to-Au gap from 0 to 75 nm.3 characterizations5 properties1 figureExperimentalhBNStudied MaterialAuCapping Or ContactazopolymerSubstrate / DielectricExpand
Research paperExperimental CharacterizationTheoreticalComputed PhononLocal control and lateral nanofocusing of hyperbolic phonon polaritonsJacob T. Heiden, Haozhe Tong, Yongjun Lim, Heerin Noh et al.arXiv·2026·arXiv:2604.08996AbstractPhonon polaritons in van der Waals crystals enable exceptional light confinement and control over low-loss nanolight propagation. The polariton wavelength can be controlled by the crystal geometry, isotopic composition, or surrounding environment – for which substrate engineering is particularly effective. However, existing approaches of substrate nanopatterning are binary and offer limited leverage. Here, we demonstrate local control over the wavelength of phonon polaritons in hexagonal boron nitride by employing a sinusoidally corrugated gold surface to smoothly vary the gap between the van der Waals crystal and metallic substrate. The nonuniform gap provides a continuous and nearly threefold local variation of the polariton wavelength across the structure, verified by near-field optical microscopy. Our platform further enables lateral nanofocusing by gradually compressing and decompressing the wavelength of propagating polaritons by a factor of around 2.5 achieved solely through substrate geometry, consistent with our local control experiments and theoretical calculations.Read more
hBN flake placed on a sinusoidally corrugated azopolymer film conformally coated with Au, producing a spatially varying hBN-to-Au gap from 0 to 75 nm.3 characterizations5 properties1 figureExperimentalhBNStudied MaterialAuCapping Or ContactazopolymerSubstrate / DielectricExpand
Research paperExperimental CharacterizationTheoreticalComputed PhononLocal control and lateral nanofocusing of hyperbolic phonon polaritonsJacob T. Heiden, Haozhe Tong, Yongjun Lim, Heerin Noh et al.arXiv·2026·arXiv:2604.08996AbstractPhonon polaritons in van der Waals crystals enable exceptional light confinement and control over low-loss nanolight propagation. The polariton wavelength can be controlled by the crystal geometry, isotopic composition, or surrounding environment – for which substrate engineering is particularly effective. However, existing approaches of substrate nanopatterning are binary and offer limited leverage. Here, we demonstrate local control over the wavelength of phonon polaritons in hexagonal boron nitride by employing a sinusoidally corrugated gold surface to smoothly vary the gap between the van der Waals crystal and metallic substrate. The nonuniform gap provides a continuous and nearly threefold local variation of the polariton wavelength across the structure, verified by near-field optical microscopy. Our platform further enables lateral nanofocusing by gradually compressing and decompressing the wavelength of propagating polaritons by a factor of around 2.5 achieved solely through substrate geometry, consistent with our local control experiments and theoretical calculations.Read more
hBN flake placed on a sinusoidally corrugated azopolymer film conformally coated with Au, producing a spatially varying hBN-to-Au gap from 0 to 75 nm.3 characterizations5 properties1 figureExperimentalhBNStudied MaterialAuCapping Or ContactazopolymerSubstrate / DielectricExpand